Confirming target engagement for reversible inhibitors in vivo by kinetically tuned activity-based probes.
暂无分享,去创建一个
Steven J Brown | Brent R. Martin | J. Chang | T. Spicer | B. Cravatt | A. Adibekian | H. Rosen | P. Hodder | A. Speers | D. Bachovchin | J. Ferguson | K. Tsuboi | V. Fernández-Vega | Ku‐Lung Hsu
[1] Raymond E Moellering,et al. How chemoproteomics can enable drug discovery and development. , 2012, Chemistry & biology.
[2] M. Bogyo,et al. New approaches for dissecting protease functions to improve probe development and drug discovery , 2012, Nature Structural &Molecular Biology.
[3] Benjamin F. Cravatt,et al. Global profiling of dynamic protein palmitoylation , 2011, Nature Methods.
[4] J. Long,et al. The metabolic serine hydrolases and their functions in mammalian physiology and disease. , 2011, Chemical reviews.
[5] J. Chang,et al. A potent and selective inhibitor of KIAA1363/AADACL1 that impairs prostate cancer pathogenesis. , 2011, Chemistry & biology.
[6] Brent R. Martin,et al. Click-generated triazole ureas as ultrapotent, in vivo-active serine hydrolase inhibitors , 2011, Nature chemical biology.
[7] Xianlin Han,et al. Lipidomics at the interface of structure and function in systems biology. , 2011, Chemistry & biology.
[8] Stefan Wetzel,et al. Small-molecule inhibition of APT1 affects Ras localization and signaling. , 2010, Nature chemical biology.
[9] D. Nomura,et al. Characterization of monoacylglycerol lipase inhibition reveals differences in central and peripheral endocannabinoid metabolism. , 2009, Chemistry & biology.
[10] Steven J Brown,et al. Substrate-Free High-Throughput Screening Identifies Selective Inhibitors for Uncharacterized Enzymes , 2009, Nature Biotechnology.
[11] Brent R. Martin,et al. Large-scale profiling of protein palmitoylation in mammalian cells , 2009, Nature Methods.
[12] B. Cravatt,et al. Activity-based protein profiling: from enzyme chemistry to proteomic chemistry. , 2008, Annual review of biochemistry.
[13] Christopher P Austin,et al. High-throughput screening assays for the identification of chemical probes. , 2007, Nature chemical biology.
[14] H. Waldmann,et al. Synthesis and evaluation of acyl protein thioesterase 1 (APT1) inhibitors. , 2006, Chemistry.
[15] Anna E Speers,et al. Profiling enzyme activities in vivo using click chemistry methods. , 2004, Chemistry & biology.
[16] A. Gilman,et al. Characterization of Saccharomyces cerevisiaeAcyl-protein Thioesterase 1, the Enzyme Responsible for G Protein α Subunit Deacylation in Vivo * , 2002, The Journal of Biological Chemistry.
[17] Luke G Green,et al. A stepwise huisgen cycloaddition process: copper(I)-catalyzed regioselective "ligation" of azides and terminal alkynes. , 2002, Angewandte Chemie.
[18] Morten Meldal,et al. Peptidotriazoles on solid phase: [1,2,3]-triazoles by regiospecific copper(i)-catalyzed 1,3-dipolar cycloadditions of terminal alkynes to azides. , 2002, The Journal of organic chemistry.
[19] T. Michel,et al. Depalmitoylation of Endothelial Nitric-oxide Synthase by Acyl-protein Thioesterase 1 Is Potentiated by Ca2+-Calmodulin* , 1999, The Journal of Biological Chemistry.
[20] H. Sugimoto,et al. Sequence, expression in Escherichia coli, and characterization of lysophospholipase II. , 1999, Biochimica et biophysica acta.
[21] A. Gilman,et al. A Cytoplasmic Acyl-Protein Thioesterase That Removes Palmitate from G Protein α Subunits and p21RAS * , 1998, The Journal of Biological Chemistry.
[22] H. Sugimoto,et al. Purification, cDNA Cloning, and Regulation of Lysophospholipase from Rat Liver (*) , 1996, The Journal of Biological Chemistry.